AppellF2[a,b1,b2,c1,c2,x,y]
is the Appell hypergeometric function of two variables
.
AppellF2
AppellF2[a,b1,b2,c1,c2,x,y]
is the Appell hypergeometric function of two variables
.
Details
- AppellF2 belongs to the family of Appell functions that generalize the hypergeometric series and solves the system of Horn PDEs with polynomial coefficients.
- Mathematical function, suitable for both symbolic and numerical manipulation.
has a primary definition through the hypergeometric series
, which is convergent inside the region
.- The region of convergence of the Appell F2 series for real values of its arguments is the following:
- In general,
satisfies the following Horn PDE system »: 
reduces to
when
or
. - For certain special arguments, AppellF2 automatically evaluates to exact values.
- AppellF2 can be evaluated to arbitrary numerical precision.
Examples
open all close allBasic Examples (7)
AppellF2[2, 1, 3, 4, 5, 0.6, 0.3]Sum[x^m y^n( Pochhammer[a, m + n]Pochhammer[b1, m] Pochhammer[b2, n]/Pochhammer[c1, m]Pochhammer[c2, n] m! n!), {m, 0, Infinity}, {n, 0, Infinity}]Plot over a subset of the reals:
Plot[AppellF2[2, 1, 1 / 2, 1 / 3, 2, 1 / 3, y], {y, -3 / 4, 1 / 4}]Plot over a subset of the complexes:
Plot[Abs[AppellF2[1 / 2, 1 / 3, 1 / 4, 1 / 5, 1 / 6, 1 / 7, z I]], {z, -3 / 4, 3 / 4}]Plot a family of AppellF2 functions:
Plot[Table[Abs[AppellF2[1 / 2, 1 / 3, 1 / 4, 1 / 5, 1 / 6, n / 10 I, z I]], {n, -5, 5, 1}]//Evaluate, {z, -3 / 4, 3 / 4}]Series expansion at the origin:
Series[AppellF2[1, 1, 1, 1, 3, 4, x], {x, 0, 3}]TraditionalForm formatting:
AppellF2[a, Subscript[b, 1], Subscript[b, 2], Subscript[c, 1], Subscript[c, 2], x, y]//TraditionalFormScope (17)
Numerical Evaluation (6)
AppellF2[3, 2, 1, 2, 3, 1 / 3, 0.2]AppellF2[-2, -1, -2, 5, 2 / 3 + I, 0.4, 0.3]N[AppellF2[3, 2, 1, 2, 3, 1 / 3, 2 / 5], 10]The precision of the output tracks the precision of the input:
AppellF2[3, 2, 1, 2, 3, 1 / 3, 0.400000000000000000001]AppellF2[I, 1, 1 + I, 3.2, 1 / 2, 0.5, 0.2 + 0.5 I]Evaluate AppellF2 efficiently at high precision:
AppellF2[3, 2, 1, 2, 1 / 3, 1 / 7, 1 / 5`100]//TimingAppellF2[3, 2, 1, 2, 7, 1 / 3, -1 / 5`100 + I];//TimingCompute average-case statistical intervals using Around:
AppellF2[ 1 / 2, 1, 5 / 2, 3, 1, 0, Around[2.1, 0.01]]Compute the elementwise values of an array:
AppellF2[1 / 2, 1, 1 / 2, 1 / 2, 1, 0, {{1 / 2, 2}, {2, 1 / 2}}]Or compute the matrix AppellF2 function using MatrixFunction:
MatrixFunction[AppellF2[1 / 2, 1, 1 / 2, 1 / 2, 1, 0, #]&, {{1 / 2, 2}, {2, 1 / 2}}]//FullSimplifySpecific Values (3)
AppellF2[1 / 2, 0, 1 / 2, 1, 1 / 2, 0, 2]AppellF2[1 / 2, 1 / 3, 1 / 4, 1 / 5, 1 / 2, 0, 2]Simplify to Hypergeometric2F1 functions:
AppellF2[a, Subscript[b, 1], Subscript[b, 2], Subscript[c, 1], Subscript[c, 2], x, 0]AppellF2[a, Subscript[b, 1], Subscript[b, 2], Subscript[c, 1], Subscript[c, 2], 0, y]AppellF2[a, Subscript[b, 1], Subscript[b, 2], Subscript[c, 1], Subscript[c, 2], 0, 0]Visualization (3)
Plot the AppellF2 function for various parameters:
Plot[{AppellF2[2, 1, 3, 1 / 3, 2, x, 1 / 3], AppellF2[2, 1, 3, 1 / 3, 2, x, 1 / 4], AppellF2[2, 1, 3, 1 / 3, 2, x, 1 / 5]}, {x, -1 / 2, 1 / 2}]Plot AppellF2 as a function of its second parameter
:
Plot[{AppellF2[2, 1, 1 / 2, 1 / 3, 2, 1 / 3, y], AppellF2[2, 1, 1 / 2, 1 / 3, 2, 1 / 4, y], AppellF2[2, 1, 1 / 2, 1 / 3, 2, 1 / 5, y]}, {y, -1 / 2, 1 / 2}]ComplexContourPlot[Re[AppellF2[2, 1, 3, 1 / 3, 2, 0, z]], {z, -1 - I, 1 + I}]ComplexContourPlot[Im[AppellF2[2, 1, 3, 1 / 3, 2, 0, z]], {z, -5 - 5I, 5 + 5I}]Differentiation (4)
First derivative with respect to x:
D[AppellF2[a, Subscript[b, 1], Subscript[b, 2], Subscript[c, 1], Subscript[c, 2], x, y], x]First derivative with respect to y:
D[AppellF2[a, Subscript[b, 1], Subscript[b, 2], Subscript[c, 1], Subscript[c, 2], x, y], y]Higher derivatives with respect to y:
Table[D[AppellF2[a, Subscript[b, 1], Subscript[b, 2], Subscript[c, 1], Subscript[c, 2], x, y], {y, k}], {k, 1, 3}]//FullSimplifyPlot the higher derivatives with respect to y when a=b1=b2=2, c1=c2=5 and x=1/5:
Plot[Evaluate[% /. {a -> 2, Subscript[b, 1] -> 2, Subscript[b, 2] -> 2, Subscript[c, 1] -> 5, Subscript[c, 2] -> 5, x -> 1 / 5}], {y, -1 / 2, 1 / 2}, Rule[...]]Formula for the ![]()
derivative with respect to y:
D[AppellF2[a, Subscript[b, 1], Subscript[b, 2], Subscript[c, 1], Subscript[c, 2], x, y], {y, n}]Series Expansions (1)
Find the Taylor expansion using Series:
Series[AppellF2[a, Subscript[b, 1], Subscript[b, 2], Subscript[c, 1], Subscript[c, 2], x, y], {x, 0, 2}]//Normal//FullSimplifyPlots of the first three approximations around
:
terms = Normal@Table[Series[AppellF2[1 / 2, 1 / 3, 1 / 4, 1 / 5, 1 / 6, x, .3], {x, 0, m}], {m, 1, 5, 2}];
Plot[{AppellF2[1 / 2, 1 / 3, 1 / 4, 1 / 5, 1 / 6, x, .3], terms}, {x, 0, 1 / 2}]Applications (1)
The Appell function
solves the following system of PDEs with polynomial coefficients:
pde = {x (1 - x) f^(2, 0)[x, y] - x y f^(1, 1)[x, y] + (Subscript[c, 1] - (a + Subscript[b, 1] + 1)x)f^(1, 0)[x, y] - Subscript[b, 1] y f^(0, 1)[x, y] - a Subscript[b, 1] f[x, y] == 0, y (1 - y) f^(0, 2)[x, y] - x y f^(1, 1)[x, y] + (Subscript[c, 2] - (a + Subscript[b, 2] + 1)y)f^(0, 1)[x, y] - Subscript[b, 2] x f^(1, 0)[x, y] - a Subscript[b, 2] f[x, y] == 0};(pde /. {a -> 2, Subscript[b, 1] -> 1, Subscript[b, 2] -> 1 / 2, Subscript[c, 1] -> 1 / 3, Subscript[c, 2] -> 2}) /. f -> Function[{x, y}, AppellF2[2, 1, 1 / 2, 1 / 3, 2, x, y]];% /. Thread[{x, y} -> RandomReal[{-3 / 4, 3 / 4}, {2}, WorkingPrecision -> 20]]Neat Examples (1)
Many elementary and special functions are special cases of AppellF2:
funclist = Inactivate[...];Grid[...]//TraditionalFormSee Also
AppellF1 AppellF3 AppellF4 Hypergeometric2F1 Gamma Pochhammer
Related Guides
Related Links
History
Text
Wolfram Research (2023), AppellF2, Wolfram Language function, https://reference.wolfram.com/language/ref/AppellF2.html.
CMS
Wolfram Language. 2023. "AppellF2." Wolfram Language & System Documentation Center. Wolfram Research. https://reference.wolfram.com/language/ref/AppellF2.html.
APA
Wolfram Language. (2023). AppellF2. Wolfram Language & System Documentation Center. Retrieved from https://reference.wolfram.com/language/ref/AppellF2.html
BibTeX
@misc{reference.wolfram_2026_appellf2, author="Wolfram Research", title="{AppellF2}", year="2023", howpublished="\url{https://reference.wolfram.com/language/ref/AppellF2.html}", note=[Accessed: 12-June-2026]}
BibLaTeX
@online{reference.wolfram_2026_appellf2, organization={Wolfram Research}, title={AppellF2}, year={2023}, url={https://reference.wolfram.com/language/ref/AppellF2.html}, note=[Accessed: 12-June-2026]}